...
首页> 外文期刊>Soil Dynamics and Earthquake Engineering >Challenges and opportunities for the application of integral abutment bridges in earthquake-prone areas: A review
【24h】

Challenges and opportunities for the application of integral abutment bridges in earthquake-prone areas: A review

机译:在地震 - 俯卧区应用整体基台桥的挑战和机遇:审查

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

Integral Abutment Bridges (IABs) are robust structures without joints and bearings, hence they are less vulnerable to natural and manmade hazards, whilst they require minimal maintenance throughout their lifespan. As a result of these engineering advantages, IABs are appealing to road and railway agencies and consultants. Despite their advantages, IAB design and construction is challenging and the main barriers for extensive use of IABs originate from the interaction between the abutment and the backfill soil. This interaction causes permanent deflections of the backfill soil and enhanced soil pressures on the abutment of passive nature. Under strong earthquake excitations, the response of IABs is strongly affected by the aforementioned interaction. Surprisingly, no agreement has been reached to date in the international literature as to whether this is a beneficial or a detrimental effect. The reasons for acknowledged disagreements in the literature indicates a conceptual gap in IAB design and assessment and it, therefore, requires further investigation.To the best of the author's knowledge, the significance of this interaction in earthquake resistant IABs is dependent on a number of factors, such as the type and intensity of the earthquake, the type, length and condition of the bridge after a number of years of service, the type and height of the abutment, the bridge dynamic characteristics, e.g. stiffness, damping, mass and the type of the backfill soil, among others. Many of these competing and clashing, factors lead to worse or better IAB responses, and this depends on the additional inertia mass of the backfill soil, the additional input motion exerted on the bridge from dual paths e.g. the foundation of the abutment and the backfill soil, the dissipation capacity and stiffness of the abutment and backfill soil. With the aim of better understanding the seismic response of IABs and opine with regard to the importance of the abutment and backfill soil on the seismic response of IABs, a comprehensive state of the art review is conducted in this paper. The review includes all the aspects relevant to the IAB-backfill interaction, with emphasis on IABs subjected to earthquake excitations. The research-based evidence provided here postulates a very complex interaction effect, which may have a positive or negative effect on IAB seismic responses. The evidence gathered also suggests a minimal understanding of the potential benefits of the IAB-backfill interaction, yet a reasonable understanding of the aggravated seismic response due to the same interaction in other instances. The paper includes literature-based evidence and inferences on IAB seismic designs and concludes with the results of an extended numerical study, which was conducted to provide further evidence with regard to the effect of the bridge-backfill interaction on the seismic response and design of IABs. A representative IAB was utilised as the base model and a comprehensive parametric study was conducted varying the abutment type and height, the bridge length and the backfill soil properties. The results are evidence that, indeed, the backfill soil predominantly benefits the bridge as it reduces its bending moments and pier drifts, and which potentially can lead to more economic designs. However, the IAB-backfill interaction is strongly case-dependent and therefore meticulous and detailed modelling of the backfill soil is believed to be important to avoid underestimation of bridge stress resultants and consequent under-designs.
机译:整体抵接桥(IAB)是强大的结构,无需关节和轴承,因此它们不太容易受到自然和人造危害的影响,同时它们在其寿命期间需要最小的维护。由于这些工程优势,IABS对道路和铁路机构和顾问进行了吸引力。尽管他们的优势,IAB设计和施工是具有挑战性的,并且大量使用IAB的主要障碍来自基台与回填土壤之间的相互作用。这种相互作用导致回填土壤的永久性偏转,增强了被动性邻接的土壤压力。在强烈的地震激励下,IABS的反应受上述互动的强烈影响。令人惊讶的是,在国际文献中没有达成协议,以及这是否是有益的或不利影响。在文献中承认分歧的原因表明了IAB设计和评估中的概念性差距,因此需要进一步调查。对于提交人的知识,这种相互作用在抗震IAB中的互动的重要性取决于许多因素,如地震的类型和强度,桥梁的类型,长度和条件在多年的服务之后,桥面的类型和高度,桥梁动态特征,例如刚度,阻尼,质量和回填土的类型等。这些竞争和冲突中的许多因素导致更糟糕或更好的IAB反应,这取决于回填土的额外惯性质量,从双径施加在桥上施加的额外输入运动。基台和回填土的基础,​​静脉回填土壤的耗散能力和刚度。旨在更好地了解IABS和澳元关于基台和回水土壤对IABS地震反应的重要性,本文进行了全面的艺术审查。该审查包括与IAB回填互动相关的所有方面,重点是IABS受到地震激励的。本文提供了基于研究的证据假定了非常复杂的相互作用效果,这可能对IAB地震反应产生正面或负面影响。收集的证据也表明对IAB回填互动的潜在益处的最小了解,但由于其他实例相同的相互作用,对加重地震反应的合理理解。本文包括基于文献的证据和IAB地震设计的推论,并结束了扩展数值研究的结果,该研究是为了提供关于桥接回填互动对地震反应和IABS设计的影响的进一步证据。作为基础模型使用代表性IAB,并进行综合参数研究,改变邻接型和高度,桥梁长度和回填土壤性质。结果证明,确实,回填土壤主要受益于桥梁,因为它降低了其弯曲的时刻和码头漂移,并且可能导致更多的经济设计。然而,IAB回填相互作用依赖性依赖性,因此避免低估了桥梁应力结果和随之而来的桥接胁迫下,避免低估的细致和详细建模。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号